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微载体上无血清培养贴壁依赖性细胞:人巨噬细胞集落刺激因子的有效生产。

Serum-free cultivation of anchorage-dependent cells on microcarrier: Effective production of human macrophage colony-stimulating factor.

机构信息

Research Laboratories, Toyo Jozo Co., Ltd., 632-1 Ohito-cho, Tagata-gun, 410-23, Shizuoka-ken, Japan.

出版信息

Cytotechnology. 1991 Jan;5(Suppl 2):95-114. doi: 10.1007/BF00573882.

Abstract

For the purpose of establishing a large scale production process of biologically active substances by cultivation of anchorage-dependent mammalian cells, basic studies were carried out on the following items; establishment of a new cell line and derivation of high productivity; construction of optimal serum-free medium; optimization of cultivation method using microcarrier in serum-free medium; and establishment of purification process. The cell line, TRC-29SF, used in this study was newly established from human renal carcinoma with a function of producing macrophage colony-stimulating factor constitutively. Improvement of M-CSF productivity upon TRC-29SF cell line was performed by M-CSF gene amplification with dhfr-MTX system and by truncation of membrane-binding amino acid sequence by recombinant DNA technique. Two kinds of serum-free media, IPEG-85 and IREG-89, were formulated for the growth of TRC-29SF cell and its transformant, respectively. A new cell-adhesion method which permits homogeneous attachment to microcarrier in short term was developed by equalising the sedimentation velocity between cells and microcarrier by addition of 7% Ficoll into the medium. High cell density perfusion culture of TRC-29SF cells was achieved by microcarrier method using IPEG-85 medium, and final cell density reached over 10(7) cells/ml. Based on the results obtained, long-term perfusion cultures were performed using Mn10-5 and Mn10-5/R600 cell lines, which were created by M-CSF gene transfection and amplification. We found that the productivity of M-CSF per cell began to decrease from the end of logarithmic growth phase. Long-term cultivation with high productivity was accomplished by perfusing medium containing 2 mM sodium butyrate. Purification process for M1-CSF from the culture supernatant of transformed cell line was also established.

摘要

为了建立大规模生产依赖贴壁的哺乳动物细胞的生物活性物质的生产工艺,本研究进行了以下基础研究:建立新的细胞系和提高生产能力;构建无血清培养基;优化微载体在无血清培养基中的培养方法;建立纯化工艺。本研究中使用的细胞系 TRC-29SF 是从人肾癌细胞中新建的,具有持续产生巨噬细胞集落刺激因子的功能。通过 dhfr-MTX 系统扩增 M-CSF 基因和重组 DNA 技术截断膜结合氨基酸序列,提高了 TRC-29SF 细胞系的 M-CSF 生产能力。分别为 TRC-29SF 细胞及其转化体设计了两种无血清培养基,IPEG-85 和 IREG-89。通过在培养基中添加 7%的 Ficoll 使细胞和微载体的沉降速度相等,开发了一种新的细胞附着方法,可在短时间内实现微载体上的均匀附着。通过微载体法使用 IPEG-85 培养基实现了 TRC-29SF 细胞的高密度灌注培养,最终细胞密度超过 10(7)个细胞/ml。在此基础上,使用 Mn10-5 和 Mn10-5/R600 细胞系进行了长期灌注培养,这两个细胞系是通过 M-CSF 基因转染和扩增构建的。我们发现,M-CSF 每细胞的生产力从对数生长期结束时开始下降。通过灌注含有 2mM 丁酸钠的培养基,可以实现长期高生产力的培养。还建立了从转化细胞系的培养上清液中纯化 M1-CSF 的纯化工艺。

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